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可持续生物质木质素基水凝胶:性能、配方和生物医学应用综述。

Sustainable Biomass Lignin-Based Hydrogels: A Review on Properties, Formulation, and Biomedical Applications.

机构信息

Chemical Science and Engineering Research Team (ERSIC), FPBM, Sultan Moulay Slimane University, Mghila, P.O. Box 592, Beni Mellal 23000, Morocco.

Nantes Université, Oniris, Univ Angers, INSERM, Regenerative Medicine and Skeleton, RmeS, UMR 1229, F-44000 Nantes, France.

出版信息

Int J Mol Sci. 2023 Aug 30;24(17):13493. doi: 10.3390/ijms241713493.

Abstract

Different techniques have been developed to overcome the recalcitrant nature of lignocellulosic biomass and extract lignin biopolymer. Lignin has gained considerable interest owing to its attractive properties. These properties may be more beneficial when including lignin in the preparation of highly desired value-added products, including hydrogels. Lignin biopolymer, as one of the three major components of lignocellulosic biomaterials, has attracted significant interest in the biomedical field due to its biocompatibility, biodegradability, and antioxidant and antimicrobial activities. Its valorization by developing new hydrogels has increased in recent years. Furthermore, lignin-based hydrogels have shown great potential for various biomedical applications, and their copolymerization with other polymers and biopolymers further expands their possibilities. In this regard, lignin-based hydrogels can be synthesized by a variety of methods, including but not limited to interpenetrating polymer networks and polymerization, crosslinking copolymerization, crosslinking grafted lignin and monomers, atom transfer radical polymerization, and reversible addition-fragmentation transfer polymerization. As an example, the crosslinking mechanism of lignin-chitosan-poly(vinyl alcohol) (PVA) hydrogel involves active groups of lignin such as hydroxyl, carboxyl, and sulfonic groups that can form hydrogen bonds (with groups in the chemical structures of chitosan and/or PVA) and ionic bonds (with groups in the chemical structures of chitosan and/or PVA). The aim of this review paper is to provide a comprehensive overview of lignin-based hydrogels and their applications, focusing on the preparation and properties of lignin-based hydrogels and the biomedical applications of these hydrogels. In addition, we explore their potential in wound healing, drug delivery systems, and 3D bioprinting, showcasing the unique properties of lignin-based hydrogels that enable their successful utilization in these areas. Finally, we discuss future trends in the field and draw conclusions based on the findings presented.

摘要

不同的技术已经被开发出来以克服木质纤维素生物质的顽固性并提取木质素生物聚合物。木质素因其吸引人的特性而引起了相当大的兴趣。当将木质素纳入高附加值产品(包括水凝胶)的制备中时,这些特性可能更有益。木质素生物聚合物作为木质纤维素生物材料的三大成分之一,由于其生物相容性、可生物降解性以及抗氧化和抗菌活性,在生物医学领域引起了极大的关注。近年来,通过开发新的水凝胶来提高其价值的做法有所增加。此外,木质素基水凝胶在各种生物医学应用中显示出巨大的潜力,并且它们与其他聚合物和生物聚合物的共聚进一步扩大了它们的可能性。在这方面,木质素基水凝胶可以通过多种方法合成,包括但不限于互穿聚合物网络和聚合、交联共聚、交联接枝木质素和单体、原子转移自由基聚合和可逆加成-断裂转移聚合。例如,木质素-壳聚糖-聚乙烯醇(PVA)水凝胶的交联机制涉及木质素的活性基团,如羟基、羧基和磺酸基,这些基团可以形成氢键(与壳聚糖和/或 PVA 的化学结构中的基团)和离子键(与壳聚糖和/或 PVA 的化学结构中的基团)。本文的目的是提供一个关于木质素基水凝胶及其应用的综合概述,重点介绍木质素基水凝胶的制备和性能以及这些水凝胶在生物医学中的应用。此外,我们探讨了它们在伤口愈合、药物输送系统和 3D 生物打印中的潜在应用,展示了木质素基水凝胶的独特性质,使其能够成功应用于这些领域。最后,我们讨论了该领域的未来趋势,并根据提出的发现得出结论。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/666e/10487582/618daeac415e/ijms-24-13493-g004.jpg

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